• Laser & Optoelectronics Progress
  • Vol. 53, Issue 9, 90004 (2016)
Dong Yijing1、2、*, Ma Xiuhua1, Li Shiguang1, and Zhu Xiaolei1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3788/lop53.090004 Cite this Article Set citation alerts
    Dong Yijing, Ma Xiuhua, Li Shiguang, Zhu Xiaolei. 3~5 μm Optical Parametric Oscillator Technology[J]. Laser & Optoelectronics Progress, 2016, 53(9): 90004 Copy Citation Text show less
    References

    [1] Numata K, Riris H, Li S X, et al. Ground demonstration of trace gas lidar based on optical parametric amplifier[J]. Journal of Applied Remote Sensing, 2012, 6(5): 063561.

    [2] Moulton F, Dergachev A, Lsyanova Y, et al. Recent advances in solid state lasers and nonlinear optics for remote sensing[C]. SPIE, 2003, 4893: 193-202.

    [3] Guo B J, Wang Y, Peng C, et al. Laser-based mid-infrared reflectance imaging of biological tissues[J]. Optics Express, 2004, 12(1): 208-219.

    [4] Fan Jinxiang. Status quo and trend of infrared system and technologies for America′s ballistic missile defense system[J]. Infrared and Laser Engineering, 2006, 35(5): 536-550.

    [5] Gan Yuanliu, Xu Shilu. Current situation and development of the IR countermeasures system on America helicopter[J]. Laser & Infrared, 2006, 36(1): 7-10.

    [6] Liu Zunyang, Bian Jintian, Shao Li, et al. Progress of mid-infrared laser technology[J]. Laser & Infrared, 2013, 43(8): 853-858.

    [7] Gmachl C, Capasso F,Sivco D L, et al. Recent progress in quantum cascade lasers and applications[J]. Reports on Progress in Physics, 2001, 64(1): 1533-1601.

    [8] Garbuzov D Z, Lee H,Khalfin V, et al. 2.3-2.7 μm room temperature CW operation of InGaAsSb-AlGaAsSb broad waveguide SCH-QW diode lasers[J]. IEEE Photonics Technology Letters, 1999, 11(7): 794-796.

    [9] Lenhardt T, Hümmer M, Rner K, et al. Continuous wave single mode operation of GaInAsSb/GaSb quantum well lasers emitting beyond 3 μm[J]. Applied Physics Letters, 2008, 92(18): 183508.

    [10] Tokita S, Murakami M, Shimizu S. High power 3 μm erbium fiber lasers[C]. Advanced Solid State Lasers, 2014, AM3A: AM3A.4.

    [11] Jackson S D. Towards high-power mid-infrared emission from a fiber laser[J]. Nature Photonics, 2012, 6(7): 423-431.

    [12] Henderson-Sapir O, Munch J, Ottaway D J. Mid-infrared fiber lasers at and beyond 3.5 μm using dual-wavelength pumping[J]. Optics Letters, 2014, 39(3): 493-496.

    [13] Bernier M, Fortin V, Caron N, et al. Mid-infrared chalcogenide glass Raman fiber laser[J]. Optics Letters, 2013, 38(2): 127-129.

    [14] Wang Xu, Xie Jijiang, Pan Qikun, et al. Research progress of non-chain HF/DF laser[J]. Chinese Optics, 2015, 8(3): 340-349.

    [15] Yi Aiping, Liu Jingru, Tang Ying, et al. Electrically initiated repetitive-pulsed non-chain HF lasers[J]. Optics and Precision Engineering, 2011, 19(2): 360-366.

    [16] Yu Qingxu, Li Hong, Lin Junxiu. A CO-overtone laser based photoacoustic spectrometer for trace gas detection[J]. Journal of Optoelectronics·Laser, 2003, 14(7): 669-671.

    [17] Lin Junxiu, Wang Xiaoxu, Yu Qingxu. 3.0~4.2 μm low temperature cooled first covertone CO-laser[J]. Journal of Dalian University of Technology, 2009, 49(4): 617-624.

    [18] Zhang Liming, Zhou Shouhuan, Zhao Hong, et al. Introduction of Fe2+ doped mid-infrared solid state laser[J]. Laser & Infrared, 2012, 42(4): 360-364.

    [19] Myoug N S, Miror M S, Fedoror V V, et al. High-energy gain-switched mid-infrared lasers based on Cr and Fe doped Zn Se[C]. CLEO: 2011-Laser Applications to Photonic Applications, 2011, CMY: CMY4.

    [20] Gu Xin′an, Zhu Weizhen, Luo Zhiwei, et al. Optical properties and application of GaSeAgGaSe2 crystal[J]. Chinese Optics, 2012, 5(1): 57-63.

    [21] Zhang Xingliang, Guo Lihong, Zhang Chuansheng, et al. Design of high-voltage pulse trigger system for CO2 laser[J]. Chinese Optics, 2012, 5(4): 416-422.

    [22] Su Ning, Zhang Mao, Ren Gang, et al. Progress and applications of 3~5 μm optical parametric oscillator[J]. Optical Technique, 2013, 39(4): 359-364.

    [23] Ruan Peng, Xie Jijiang. The latest progress of mid-infrared optical parametric oscillator[J]. Laser Journal, 2010, 31(4): 1-3.

    [24] Wei Xingbin. Study on theoptical parametric oscillation technique of mid infrared PPLN[D]. Mianyang: China Academy of Engineering Physics, 2010: 6.

    [25] Gebhard M, Gaida C, Kadwani P, et al. High peak-power mid-infrared ZnGeP2 optical parametric oscillator pumped by a Tmfiber master oscillator power amplifier system[J]. Optics Letters, 2014, 39(5): 1212-1215.

    [26] Hemming A, Richards J, Davidsin A, et al. A 27 W mid-IR laser source[C]. Quantum Electronics Conference & Lasers and Electro-Optics, 2011, 16(2): 624-626.

    [27] Han Long, Yuan Ligang, Chen Guo, et al. 26 W mid-infrared solid-state laser[J]. Chinese J Lasers, 2015, 42(3): 0302004.

    [28] Peng Y F, Wei X B, Wang W M. Mid-infrared optical parametric oscillator based on ZnGeP2 pumped by 2 μm laser[J]. Chinese Optics Letters, 2011, 9(6): 061403.

    [29] Dergachev A, Armstrong D, Smith A, et al. High-power, high-energy ZGP OPA Pumped by a 2.05 μm HoYLF MOPA system[C]. SPIE, 2008, 6875: 687507.

    [30] Lippert E. High power and high energy infrared parametric sources[C]. 2015 Conference on Lasers and Electro-Optics, 2015, SW3O: SW3O.3.

    [31] Wei Lei, Xiao Lei, Han Long, et al. ZGP optical parametric oscillator pumped by TmYAP laser[J]. Chinese J Lasers, 2012, 39(7): 0702006.

    [32] He Lijie, Hou Tianyu, Wei Lei, et al. Experimental study on mid-infrared ZGP optical parametric oscillator[J]. Laser & Infrared, 2014, 44(9): 991-993.

    [33] Shen Y J, Yao B Q, Cui Z, et al. A ring ZnGeP2 optical parametric oscillator pumped by a HoLuAG laser[J]. Applied Physics B, 2014, 117(1): 127-130.

    [34] Yao B Q, Shen Y J, Duan X M, et al. A 41-W ZnGeP2 potical oscillator pumped by a Q-switched HoYAG laser[J]. Optics Letters, 2014, 39(23): 6589-6592.

    [35] Kieleck C, Berrou A, Domelan B, et al. 6.5 W ZnGeP2 OPOTm3+ doped single-oscillator fiber laser[J]. Optics Letters, 2015, 40(6): 1101-1104.

    [36] Bai F, Wang Q P, Liu Z J, et al. Theoretical and experimental studies on output characteristics of an intracavity KTA OPO[J]. Optics Express, 2012, 20(2): 807-815.

    [37] Liu Z J, Wang Q P, Zhang X Y, et al. Coexistent optical parametric oscillation and stimulated Raman scattering KTiOAsO4[J]. Optics Express, 2008, 16(21): 17902-17907.

    [38] Mahnke P, Peuser P, Huke P. NdYAG laser/KTiOAsO4 (KTA) OPO system for laser ultrasound measurements on carbon-fiber-reinforced composite materials[J]. Applied Physics B, 2014, 116(2): 333-338.

    [39] Puncken O, Gandara D M, Damjanic M, et al. 1 kHz 3.3 μm NdYAG KTiOAsO4 optical parametric oscillator system for laser ultrasound excitation of carbon-fiber-reinforced plastics[J]. Applied Optics, 2016, 55(6): 1310-1317.

    [40] Mel′ Nikov I V, Machnev A A, Novozhylov P B, et al. Compact mid-IR source based on a DFB diode, fiber amplifier, and PPLN[J]. SPIE, 2013, 8601: 860132.

    [41] Hardy B, Berrou A, Guilbaud S, et al. Compact, single-frequency, doubly resonant optical parametric oscillator pumped in an achromatic phase-adapted double-pass geometry[J]. Optics Letters, 2011, 36(5): 678-680.

    [42] Peng Y F, Wei X, Wang W M, et al. High-power 3.8 μm tunable optical parametric oscillator based on PPMgOCLN[J]. Optics Communications, 2010, 283(20): 4032-4035.

    [43] Wu B, Kong J, Shen Y H. High-efficiency semi-external-cavity-structured periodically poled MgLN-based optical parametric oscillator with output power exceeding 9.2 W at 3.82 μm[J]. Optics Letters, 2010, 35(8): 1118-1120.

    [44] Liu J, Liu Q, Yan X, et al. High repetition frequency PPMgOLN mid-infrared optical parametric oscillator[J]. Laser Physics Letters, 2010, 7(9): 630-633.

    [45] Lin D J, Alam S, Shen Y H, et al. An all-fiber PM MOPA pumped high-power OPO at 3.82 μm based on large aperture PPMgLN[C]. SPIE, 2012, 8237: 82371K.

    [46] Lin Hongyi, Huang Xiaohua, Xu Yingchao, et al. Mid-infrared tunable pulsed optical parametric oscillator based on PPMgLN[J]. Laser & Optoelectronics Progress, 2015, 52(2): 021402.

    [47] Kumar S C, Wei J X, Debray J, et al. High-power, widely tunable, room-temperature picosecond optical parametric oscillator based on cylindrical 5% MgOPPLN[J]. Optics Letters, 2015, 40(16): 3897-3900.

    [48] Liu J, Tang P H, Chen X, et al. Highly efficient tunable mid-infrared optical parametric oscillator pumped by a wavelength locked, Q-switched ErYAG laser[J]. Optics Express, 2015, 23(16): 20812-20819.

    [49] Hardy B, Berrou A, Guilbaud S, et al. Compact, single-frequency, doubly resonant optical parametric oscillator pumped in an achromatic phase-adapted double-pass geometry[J]. Optics Letters, 2011, 36(5): 678-680.

    CLP Journals

    [1] Sun Xiao, Han Long, Wang Keqiang. Progress in Directly Pumping of Mid-Infrared Solid-State Lasers[J]. Laser & Optoelectronics Progress, 2017, 54(5): 50007

    Dong Yijing, Ma Xiuhua, Li Shiguang, Zhu Xiaolei. 3~5 μm Optical Parametric Oscillator Technology[J]. Laser & Optoelectronics Progress, 2016, 53(9): 90004
    Download Citation